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  3. Genomic and Molecular Landscape of DNA Damage Repair Deficiency across The Cancer Genome Atlas.
 

Genomic and Molecular Landscape of DNA Damage Repair Deficiency across The Cancer Genome Atlas.

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BORIS DOI
10.7892/boris.126384
Date of Publication
April 3, 2018
Publication Type
Article
Contributor
Knijnenburg, Theo A
Wang, Linghua
Zimmermann, Michael T
Chambwe, Nyasha
Gao, Galen F
Cherniack, Andrew D
Fan, Huihui
Shen, Hui
Way, Gregory P
Greene, Casey S
Liu, Yuexin
Akbani, Rehan
Feng, Bin
Donehower, Lawrence A
Miller, Chase
Shen, Yang
Karimi, Mostafa
Chen, Haoran
Kim, Pora
Jia, Peilin
Shinbrot, Eve
Zhang, Shaojun
Liu, Jianfang
Hu, Hai
Bailey, Matthew H
Yau, Christina
Wolf, Denise
Zhao, Zhongming
Weinstein, John N
Li, Lei
Ding, Li
Mills, Gordon B
Laird, Peter W
Wheeler, David A
Shmulevich, Ilya
Monnat, Raymond J
Xiao, Yonghong
Wang, Chen
Subject(s)

600 - Technology::610...

Series
Cell reports
ISSN or ISBN (if monograph)
2211-1247
Publisher
Cell Press
Language
English
Publisher DOI
10.1016/j.celrep.2018.03.076
PubMed ID
29617664
Uncontrolled Keywords

DNA damage footprints...

Description
DNA damage repair (DDR) pathways modulate cancer risk, progression, and therapeutic response. We systematically analyzed somatic alterations to provide a comprehensive view of DDR deficiency across 33 cancer types. Mutations with accompanying loss of heterozygosity were observed in over 1/3 of DDR genes, including TP53 and BRCA1/2. Other prevalent alterations included epigenetic silencing of the direct repair genes EXO5, MGMT, and ALKBH3 in ∼20% of samples. Homologous recombination deficiency (HRD) was present at varying frequency in many cancer types, most notably ovarian cancer. However, in contrast to ovarian cancer, HRD was associated with worse outcomes in several other cancers. Protein structure-based analyses allowed us to predict functional consequences of rare, recurrent DDR mutations. A new machine-learning-based classifier developed from gene expression data allowed us to identify alterations that phenocopy deleterious TP53 mutations. These frequent DDR gene alterations in many human cancers have functional consequences that may determine cancer progression and guide therapy.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/64168
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nihms962902.pdftextAdobe PDF2.35 MBpublisheraccepted restricted
1-s2.0-S2211124718304376-main.pdftextAdobe PDF4.9 MBAttribution-NonCommercial-NoDerivatives (CC BY-NC-ND 4.0)publishedOpen
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